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. 2021 May;27(10):2011-2028.
doi: 10.1111/gcb.15538. Epub 2021 Feb 13.

Microbial metabolic response to winter warming stabilizes soil carbon

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Microbial metabolic response to winter warming stabilizes soil carbon

Jing Tian et al. Glob Chang Biol. 2021 May.

Abstract

Current consensus on global climate change predicts warming trends with more pronounced temperature changes in winter than summer in the Northern Hemisphere at high latitudes. Moderate increases in soil temperature are generally related to faster rates of soil organic carbon (SOC) decomposition in Northern ecosystems, but there is evidence that SOC stocks have remained remarkably stable or even increased on the Tibetan Plateau under these conditions. This intriguing observation points to altered soil microbial mediation of carbon-cycling feedbacks in this region that might be related to seasonal warming. This study investigated the unexplained SOC stabilization observed on the Tibetan Plateau by quantifying microbial responses to experimental seasonal warming in a typical alpine meadow. Ecosystem respiration was reduced by 17%-38% under winter warming compared with year-round warming or no warming and coincided with decreased abundances of fungi and functional genes that control labile and stable organic carbon decomposition. Compared with year-round warming, winter warming slowed macroaggregate turnover rates by 1.6 times, increased fine intra-aggregate particulate organic matter content by 75%, and increased carbon stabilized in microaggregates within stable macroaggregates by 56%. Larger bacterial "necromass" (amino sugars) concentrations in soil under winter warming coincided with a 12% increase in carboxyl-C. These results indicate the enhanced physical preservation of SOC under winter warming and emphasize the role of soil microorganisms in aggregate life cycles. In summary, the divergent responses of SOC persistence in soils exposed to winter warming compared to year-round warming are explained by the slowing of microbial decomposition but increasing physical protection of microbially derived organic compounds. Consequently, the soil microbial response to winter warming on the Tibetan Plateau may cause negative feedbacks to global climate change and should be considered in Earth system models.

Keywords: SOC stabilization; carbon degradation genes; microbial anabolism; microbial community; soil aggregate turnover; winter warming.

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REFERENCES

    1. Adams, R. I., Miletto, M., Taylor, J. W., & Bruns, T. D. (2013). Dispersal in microbes: Fungi in indoor air are dominated by outdoor air and show dispersal limitation at short distances. The ISME Journal, 7(7), 1262-1273. https://doi.org/10.1038/ismej.2013.28
    1. Appuhn, A., Scheller, E., & Joergensen, R. G. (2006). Relationships between microbial indices in roots and silt loam soils forming a gradient in soil organic matter. Soil Biology and Biochemistry, 38, 2557-2564. https://doi.org/10.1016/j.soilbio.2006.03.011
    1. Bai, T., Wang, P., Hall, S. J., Wang, F., Ye, C., Li, Z., Li, S., Zhou, L., Qiu, Y., Guo, J., Guo, H., Wang, Y. I., & Hu, S. (2020). Interactive global change factors mitigate soil aggregation and carbon change in a semi-arid grassland. Global Change Biology, 26, 5320-5332. https://doi.org/10.1111/gcb.15220
    1. Birkemoe, T., Bergmann, S., Hasle, T. E., & Klanderud, Y. (2016). Experimental warming increases herbivory by leaf-chewing insects in an alpine plant community. Ecology and Evolution, 6(19), 6955-6962. https://doi.org/10.1002/ece3.2398
    1. Borken, W., & Matzner, E. (2009). Reappraisal of drying and wetting effects on C and N mineralization and fluxes in soils. Global Change Biology, 15, 808-824. https://doi.org/10.1111/j.1365-2486.2008.01681.x

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